Post on 18-Jan-2016
Hashing 1
Hashing
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Hashing … Again, a (dynamic) set of elements in which we do ‘search’, ‘insert’, and
‘delete’ Linear ones: lists, stacks, queues, … Nonlinear ones: trees, graphs (relations between elements are explicit)
Now for the case ‘relation is not important’, but want to be ‘efficient’ for searching (like in a dictionary)!
for example, on-line spelling check in words …
Generalizing an ordinary array, direct addressing! An array is a direct-address table
A set of N keys, compute the index, then use an array of size N Key k at k -> direct address, now key k at h(k) -> hashing
Basic operation is in O(1)! O(n) for lists O(log n) for trees
To ‘hash’ (is to ‘chop into pieces’ or to ‘mince’), is to make a ‘map’ or a ‘transform’ …
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Example Applications Compilers use hash tables (symbol table) to keep
track of declared variables.
On-line spell checkers. After prehashing the entire dictionary, one can check each word in constant time and print out the misspelled word in order of their appearance in the document.
Useful in applications when the input keys come in sorted order. This is a bad case for binary search tree. AVL tree and B+-tree are harder to implement and they are not necessarily more efficient.
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Hash Table
Hash table is a data structure that support Finds, insertions, deletions (deletions may be
unnecessary in some applications)
The implementation of hash tables is called hashing A technique which allows the executions of above operations
in constant average time
Tree operations that requires any ordering information among elements are not supported findMin and findMax Successor and predecessor Report data within a given range List out the data in order
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Breaking comparison-based lower bounds
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Reducing space
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Collision Resolution by Chaining
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Analysis of Hashing with Chaining
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Hash Functions
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Dealing with non-numerical Keys
Can the keys be strings? Most hash functions assume that the keys are natural
numbers if keys are not natural numbers, a way must be found to
interpret them as natural numbers
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Decimal expansion: 523 = 5*10^2+2*10^1+3*10^0 Hexadecimal: 5B3 = 5*16^2 + 11*16^1 + 3*16^0
So what might be interpreted as for a string like ‘smith’?
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Method 1: Add up the ASCII values of the characters in the string Problems:
Different permutations of the same set of characters would have the same hash value
If the table size is large, the keys are not distribute well. e.g. Suppose m=10007 and all the keys are eight or fewer characters long. Since ASCII value <= 127, the hash function can only assume values between 0 and 127*8=1016
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Method 2
If the first 3 characters are random and the table size is 10,0007 => a reasonably equitable distribution
Problem English is not random Only 28 percent of the table can actually be hashed to
(assuming a table size of 10,007)
272a,…,z and space
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Method 3 computes involves all characters in the key and be expected to
distribute well
1
037*]1[
KeySize
i
iiKeySizeKey
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Collison resolution: Open Addressing
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Open Addressing
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Linear Probing f(i) =i
cells are probed sequentially (with wrap-around) hi(K) = (hash(K) + i) mod m
Insertion: Let K be the new key to be inserted, compute
hash(K) For i = 0 to m-1
compute L = ( hash(K) + I ) mod m T[L] is empty, then we put K there and stop.
If we cannot find an empty entry to put K, it means that the table is full and we should report an error.
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Linear Probing Example
hi(K) = (hash(K) + i) mod m E.g, inserting keys 89, 18, 49, 58, 69 with hash(K)=K mod 10
To insert 58, probe T[8], T[9], T[0], T[1]
To insert 69, probe T[9], T[0], T[1], T[2]
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Quadratic Probing Example f(i) = i2
hi(K) = ( hash(K) + i2 ) mod m E.g., inserting keys 89, 18, 49, 58, 69 with hash(K) = K mod 10
To insert 58, probe T[8], T[9], T[(8+4) mod 10]
To insert 69, probe T[9], T[(9+1) mod 10], T[(9+4) mod 10]
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Quadratic Probing Two keys with different home positions will have different probe
sequences e.g. m=101, h(k1)=30, h(k2)=29 probe sequence for k1: 30,30+1, 30+4, 30+9 probe sequence for k2: 29, 29+1, 29+4, 29+9
If the table size is prime, then a new key can always be inserted if the table is at least half empty (see proof in text book)
Secondary clustering Keys that hash to the same home position will probe the same
alternative cells Simulation results suggest that it generally causes less than an extra
half probe per search To avoid secondary clustering, the probe sequence need to be a
function of the original key value, not the home position
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Double Hashing To alleviate the problem of clustering, the sequence of
probes for a key should be independent of its primary position => use two hash functions: hash() and hash2()
f(i) = i * hash2(K) E.g. hash2(K) = R - (K mod R), with R is a prime smaller than
m
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Double Hashing Example hi(K) = ( hash(K) + f(i) ) mod m; hash(K) = K mod m
f(i) = i * hash2(K); hash2(K) = R - (K mod R), Example: m=10, R = 7 and insert keys 89, 18, 49, 58, 69
To insert 49, hash2(49)=7, 2nd probe is T[(9+7) mod 10]
To insert 58, hash2(58)=5, 2nd probe is T[(8+5) mod 10]
To insert 69, hash2(69)=1, 2nd probe is T[(9+1) mod 10]
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Choice of hash2() Hash2() must never evaluate to zero
For any key K, hash2(K) must be relatively prime to the table size m. Otherwise, we will only be able to examine a fraction of the table entries. E.g.,if hash(K) = 0 and hash2(K) = m/2, then we can only examine
the entries T[0], T[m/2], and nothing else!
One solution is to make m prime, and choose R to be a prime smaller than m, and set
hash2(K) = R – (K mod R)
Quadratic probing, however, does not require the use of a second hash function likely to be simpler and faster in practice
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Deletion in Open Addressing Actual deletion cannot be performed in open
addressing hash tables otherwise this will isolate records further down the probe
sequence
Solution: Add an extra bit to each table entry, and mark a deleted slot by storing a special value DELETED (tombstone) or it’s called ‘lazy deletion’.
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Re-hashing If the table is full Double the size and re-hash everything with a new
hashing function
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Analysis of Open Addressing
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Comparison between BST and hash tables
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